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Fructose/dioxygen biofuel cell based on direct electron transfer-type bioelectrocatalysis.
- Source :
-
Physical chemistry chemical physics : PCCP [Phys Chem Chem Phys] 2007 Apr 21; Vol. 9 (15), pp. 1793-801. Date of Electronic Publication: 2007 Feb 06. - Publication Year :
- 2007
-
Abstract
- One-compartment biofuel cells without separators have been constructed, in which d-fructose dehydrogenase (FDH) from Gluconobacter sp. and laccase from Trametes sp. (TsLAC) work as catalysts of direct electron transfer (DET)-type bioelectrocatalysis in the two-electron oxidation of d-fructose and four-electron reduction of dioxygen as fuels, respectively. FDH adsorbs strongly and stably on Ketjen black (KB) particles that have been modified on carbon papers (CP) and produces the catalytic current with the maximum density of about 4 mA cm(-2) without mediators at pH 5. The catalytic wave of the d-fructose oxidation is controlled by the enzyme kinetics. The location and the shape of the catalytic waves suggest strongly that the electron is directly transferred to the KB particles from the heme c site in FDH, of which the formal potential has been determined to be 39 mV vs. Ag|AgCl|sat. KCl. Electrochemistry of three kinds of multi-copper oxidases has also been investigated and TsLAC has been selected as the best one of the DET-type bioelectrocatalyst for the four-electron reduction of dioxygen in view of the thermodynamics and kinetics at pH 5. In the DET-type bioelectrocatalysis, the electron from electrodes seems to be transferred to the type I copper site of multi-copper oxidases. TsLAC adsorbed on carbon aerogel (CG) particles with an average pore size of 22 nm, that have been modified on CP electrodes, produces the catalytic reduction current of dioxygen with a density of about 4 mA cm(-2), which is governed by the mass transfer of the dissolved dioxygen. The FDH-adsorbed KB-modified CP electrodes and the TsLAC-adsorbed CG-modified CP electrodes have been combined to construct one-compartment biofuel cells without separators. The open-circuit voltage was 790 mV. The maximum current density of 2.8 mA cm(-2) and the maximum power density of 850 microW cm(-2) have been achieved at 410 mV of the cell voltage under stirring.
- Subjects :
- Catalysis
Computer Simulation
Electron Transport
Equipment Design
Equipment Failure Analysis
Models, Chemical
Bioelectric Energy Sources
Carbohydrate Dehydrogenases chemistry
Electrochemistry instrumentation
Electrochemistry methods
Fructose chemistry
Gluconobacter enzymology
Laccase chemistry
Subjects
Details
- Language :
- English
- ISSN :
- 1463-9076
- Volume :
- 9
- Issue :
- 15
- Database :
- MEDLINE
- Journal :
- Physical chemistry chemical physics : PCCP
- Publication Type :
- Academic Journal
- Accession number :
- 17415490
- Full Text :
- https://doi.org/10.1039/b617650j